BACKGROUND OF THE INVENTION
[0001] The present invention relates to aerosol dispensing devices, and in particular to
valve assemblies that provide automatic dispensing of aerosol content at predetermined
time intervals, without requiring the use of electrical power.
[0002] Aerosol cans dispense a variety of ingredients. Typically, an active is mixed with
a propellant which inside the can is at least partially in a gas state, but may also
be at least partially dissolved into a liquid containing active. Typical propellants
are a propane/butane mix or carbon dioxide. The mixture is stored under pressure in
the aerosol can. The active mixture is then sprayed by pushing down/sideways on an
activator button at the top of the can that controls a release valve. For purposes
of this application, the term "active chemical" is used to mean that portion of the
content of the container (regardless of whether in emulsion state, single phase, or
multiple phase), which is in liquid phase in the container (regardless of phase outside
the container) and has a desired active such as an insect control agent (repellent
or insecticide or growth regulator), fragrance, sanitizer, and/or deodorizer alone
and/or mixed in a solvent, and/or mixed with a portion of the propellant.
[0003] Pressure on a valve control button is typically supplied by finger pressure. However,
for fragrances, deodorizers, insecticides, and certain other actives which are sprayed
directly into the air, it is sometimes desirable to periodically refresh the concentration
of active in the air. While this can be done manually, there are situations where
this is inconvenient. For example, when an insect repellant is being sprayed to protect
a room overnight (instead of using a burnable mosquito coil), the consumer will not
want to wake up in the middle of the night just to manually spray more repellant.
[0004] There a number of prior art systems for automatically distributing actives into the
air at intermittent times. Most of these rely in some way on electrical power to activate
or control the dispensing. Where electric power is required, the cost of the dispenser
can be unnecessarily increased. Moreover, for some applications power requirements
are so high that battery power is impractical. Where that is the case, the device
can only be used where linkage to conventional power sources is possible.
[0005] Other systems discharge active intermittently and automatically from an aerosol can,
without using electricalpower. For example, U.S. Pat. No. 4,077,542 relies on a biased
diaphragm to control bursts of aerosol gas at periodic intervals.
See also U.S. Pat. Nos. 3,477,613 and 3,658,209. However, biased diaphragm systems have suffered
from reliability problems (e.g. clogging, leakage, uneven delivery). Moreover, they
sometimes do not securely attach to the aerosol can.
[0006] Moreover, the cost of some prior intermittent spray control systems makes it impractical
to provide them as single use/throw away products. For some applications, consmers
may prefer a completely disposable product.
[0007] However, many dispensing devices permit liquid with active to pass through a variety
of narrow control passages in the valve. Over time, this can lead to clogging of the
valve, and thus inconsistent operation. In U.S. Pat. No. 4,396,152 an aerosol dispensing
system was proposed which separately accessed the vapor and liquid phases of the material
in the container. However, this device did not achieve reliable automatic operation.
[0008] Document JP 56 037070 - shows a valve assembly for intermittently spraying product
from an aerosol can. The assembly has two conduits connecting to the interior of the
can. One leads to the product in the bottom of the can. The other connects to the
gas space at the top of the can and leads to an accumulation chamber. As the accumulation
chamber fills a diaphragm releases pressure from the axially remote side of a main
valve for the product. When the pressure reduces to below a critical pressure, a main
product valve opens. This results in a burst of product exiting the device from the
main nozzle. Further filling of the accumulation chamber pulls a diaphragm central
stem fully away from the axially remote end of the main valve and uncovers a dedicated
discharge passage for the propellant gas leading directly to atmosphere.
[0009] Document JP 56 070865 - shows another intermittently actuating valve for an aerosol
can in which the can has separate channels for propellant gas and product. The propellant
gas is fed via a control regulating valve through a side feed conduit to the far side
of a diaphragm where it pressurizes the accumulation chamber. The diaphragm presses
a button, which in turn operates a downstream main valve for the product. Actuation
of the main valve stem also opens an ancillary valve allowing discharge of propellant
gas from the accumulation chamber to atmosphere.
[0010] Yet another prior art arrangement is shown in JP 57 174173. In this arrangement a
can has a valve with two stages of operation. A small movement allows only propellant
gas to exit via a gas outlet. Further pressure allows product to exit via a product
outlet. When the valve assembly is affixed to the can, the valve in the top of the
can is actuated to the extent to allow the propellant gas to enter a conduit where
it leads to the end of the assembly remote from the can. It passes via a control valve
to an accumulation chamber. When it fills the accumulation chamber to a threshold
pressure a diaphragm flips and presses the top of a valve body which presses further
on the aerosol can valve allowing product to escape. When this happens, a vent orifice
opens to allow the propellant gas in the accumulation chamber to escape directly to
atmosphere.
[0011] Thus, a need still exists for improved, inexpensive automated aerosol dispensers
that do not require electrical power.
BRIEF SUMMARY OF THE INVENTION
[0012] In one aspect the invention provides a valve assembly as defined in claim 1 below.
The assembly is suitable to dispense an active chemical from an aerosol container
where the container has a first region holding a gas propellant and a second region
holding an active chemical. The assembly is of the type that can automatically iterate
between an accumulation phase where the gas is received from the container, and a
spray phase where the active chemical is automatically dispensed at intervals. The
regions need not be physically separated from each other. In fact, the preferred form
is that the first region be an upper region of the can where propellant gas has collected
above a liquid phase of the remainder of the can contents.
[0013] There is a housing mountable on an aerosol container. A movable diaphragm is associated
with the housing and linked to a seal, the diaphragm being biased towards a first
configuration. An accumulation chamber is inside the housing for providing variable
pressure against the diaphragm. A first passageway in the housing is suitable for
linking the first region of the aerosol container with the accumulation chamber, and
a second passageway links the second region with an outlet of the valve assembly.
[0014] When the diaphragm is in the first configuration the seal can restrict the flow of
active chemical out the valve assembly. When the pressure of chemical inside the accumulation
chamber exceeds a specified threshold, the diaphragm can move to a second configuration
where the active chemical is permitted to spray from the valve assembly.
[0015] In preferred forms a porous material is disposed within the first passageway to regulate
the flow rate of gas propellant there through. The diaphragm shifts back to the first
configuration from the second configuration when pressure of the gas propellant in
the accumulation chamber falls below a threshold amount.
[0016] The accumulation chamber will exhaust the gas when the diaphragm is in the second
configuration. The gas propellant and active chemical mixes in the valve assembly
outside of the can.
[0017] There may also be a container that is linked to the valve assembly, and an actuator
portion of the housing that rotates to allow gas propellant to leave the container
and enter the first passageway. The seal may be displaceable in an axial direction
to allow gas propellant to flow through the first passageway into the accumulation
chamber.
[0018] Methods for using these valve assemblies with aerosol containers are also disclosed,
and the invention provides a method as defined in claim 7 below.
[0019] The present invention achieves a secure mounting of a valve assembly on an aerosol
can, yet provides an actuator that has two modes. In one mode the valve assembly is
operationally disconnected from the actuator valve of the aerosol container (a mode
suitable for shipment or long-term storage). Another mode operationally links the
valve assembly to the aerosol container interior, and begins the cycle of periodic
and automatic dispensing of chemical there from. Importantly, periodic operation is
achieved without requiring the use of electrical power to motivate or control the
valve.
[0020] The valve assembly has few parts, and is inexpensive to manufacture and assemble.
Moreover the separate accessing of the gas propellant lets the gas (as distinguished
from more viscous liquid) motivate the diaphragm and thus provides for cleaner and
more reliable operation. By not requiring liquid and vapor to both pass through the
porous media, there is much less likelihood for clogging due to extended use over
months. Using the separation concepts described in this patent, product is released
under full pressure with liquid propellant (as in a typical manually operated aerosol
can), so as to provide for very effective particle break-up. If in a device like the
present one the propellant gas was not separated from the main product, it might separate
in the accumulation chamber or elsewhere in the device, thereby providing inconsistent
results.
[0021] The foregoing and other advantages of the invention will appear from the following
description. In the description reference is made to the accompanying drawings which
form a part thereof, and in which there is shown by way of illustration, and not limitation,
preferred embodiments of the invention. Such embodiments do not necessarily represent
the full scope of the invention, and reference should therefore be made to the claims
herein for interpreting the scope of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
FIG. 1 is a sectional view of an automatic dispensing valve assembly in an "off" configuration;
FIG. 2 is a view similar to FIG. 1, but with the valve in an "on" configuration during
the accumulation phase of the dispensing cycle;
FIG. 3 is an enlarged view of a part of the valve assembly of FIG. 1;
FIG. 4 is a view similar to FIG. 3, but with the valve in the spray phase of the dispensing
cycle;
FIG. 5 is a sectional view of an automatic dispensing valve assembly embodying the
present invention in an "off" configuration;
FIG. 6 is a view similar to FIG. 5, but with the valve in an "on" configuration during
the accumulation phase of the dispensing cycle;
FIG. 7 is a sectional view of an automatic dispensing valve assembly of another embodiment
in an "off" configuration;
FIG. 8 is a view similar to FIG. 7, but with the valve in an "on" configuration during
the accumulation phase of the dispensing cycle;
FIG. 9 is a view similar to FIG. 8, but with the valve assembly in the spray phase;
FIG. 10 is an enlarged view of a gas propellant control valve of the valve assembly
illustrated in FIG. 7; and
FIG. 11 is another enlarged view of the gas propellant valve of the valve assembly
illustrated in FIG. 8, with the valve in a different configuration.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0023] Referring to FIG. 1, a dispenser 120 is mounted onto can 122 via outer wall 144 that
has a threaded inner surface so as to intermesh with threads on the outer surface
of wall 136. A cover 149 extends substantially radially inwardly from the axially
outer end of wall 144. Wall 136 has a flange at its axially inner surface that engages
can chime 139. Wall 136 is integrally connected to an angled wall 147 that extends
radially inwardly, and axially downstream, there from. Wall 147 is integrally connected
at its radially inner edge to wall 154 that extends axially upstream and has a flange
that engages rim 129.
[0024] Control assembly 120 further includes a lever 171 that is rotated along with wall
144 to displace the control assembly 132 in the axial direction, as described above.
Additionally, lever 171 could include a perforated tab (not shown) between itself
and wall 144 that is broken before the dispenser can be actuated, thereby providing
means for indicating whether the dispenser has been tampered with.
[0025] Can 122 includes first and second valves 137 and 140, respectively, that extend into
can 122. Valve 137 is connected to a conduit 133 that extends axially towards the
bottom of the can so as to receive the chemical mixture. Valve 140 terminates in the
upper region 135 of can 122 so as to receive gaseous propellant. Valves 137 and 140
includes a downwardly actuatable conduit 138 and 143, respectively, that extend axially
out of the can 122. Accordingly, dispenser 120 may be provided as a separate part
that is mountable onto can 122 by rotating wall 144 with respect to wall 136.
[0026] Referring to FIG. 3, active valve assembly 157 includes an annular wall 177 whose
axially inner end slides over conduit 137. A flange 173 extends radially inwardly
from wall 177, and engages the outer end of conduit 138. Flange 173 defines a centrally
disposed channel 165 that extends axially there through and aligned with conduit 138.
An annular wall 141 fits inside wall 177 and extends axially downstream from flange
173, and defines an axially extending conduit 175 that is in fluid communication with
channel 165. Channel 165 extends out the dispenser 120 to provide an outlet 167 to
the ambient environment. Wall 141 further defines a second channel 152 that extends
axially between a propellant outlet vent 156 and the ambient environment
[0027] A plug 164 is disposed between channels 175 and 165, and blocks channel 165 so as
to prevent the active chemical from exiting from the dispenser 120 when not in the
spray phase. A pair of o-rings 163 are disposed between the inner surface of wall
177 and the outer surface of wall 141 to further ensure that no active chemical or
propellant is able to exit dispenser 120 through vent 156 that extends through wall
141. An annular channel 153 surrounds plug 164 and joins channels 165 and 175 in fluid
communication during the spray phase, as will be described in more detail below.
[0028] The propellant valve assembly 151 includes an annular wall 179 defining a conduit
142 that extends axially from valve stem 143 into an accumulation chamber 146. Accumulation
chamber is defined by a diaphragm 150 that extends radially from a wall 161 that is
disposed at the interface between cover 149 and the axially outer end of wall 179,
axially inner portion of wall 161, inner surface of wall 179, and outer surface of
wall 141. Diaphragm 150 is further connected at its radially inner end to wall 141.
[0029] Wall 179 includes a flange 159, similar to flange 173 of wall 177, that engages valve
stem 143, and defines a channel 181 extending there through that joins valve stem
143 and conduit 142 in fluid communication. A porous flow control media 158 is disposed
within channel 142 axially downstream from flange 159 so as to regulate the flow of
propellant into accumulation chamber 146.
[0030] When the dispenser 120 is initially mounted onto can 122, neither conduit 138 or
143 are actuated. However, referring now to FIG. 2, once the dispenser 120 is rotated
to the "ON" position, thereby beginning the accumulation phase, flanges 159 and 173
are translated axially upstream and depress valve stems 143 and 138, respectively.
Active chemical thus travels through conduit 133, valve 137, and into conduit 165.
The active is prevented, however, from flowing into conduit 175 by the seal provided
by plug 164 and o-rings 163.
[0031] The propellant travels through valve 140, channel 181, porous media 158, conduit
142, and into accumulation chamber 146. Once the pressure of propellant acting on
the axially inner surface of diaphragm 150 exceeds a predetermined threshold, the
diaphragm becomes deformed from the normal closed position illustrated in FIG. 9 to
the open position illustrated in FIG. 4.
[0032] This initiates a spray phase, during which the diaphragm 150 causes wall 141 to become
displaced axially upstream, thereby removing the inlet to channel 175 from the plug
164. Accordingly, active chemical flows along the direction of arrow N from conduit
138, through channel 153, and into conduit 175 where it exits the dispenser 120 at
outlet 167. Additionally, when wall 141 is displaced, the outer o-ring is removed
from the inner surface of wall 141.
[0033] As a result, propellant travels from accumulation chamber 164 through the gap formed
between the radially inner surface of wall 177 and the radially outer surface of wall
141 along the direction of arrow O, through channel 156, and into channel 152 where
it exits the dispenser as a separate stream. Once the pressure within accumulation
chamber 146 abates, the diaphragm snaps back to the closed position to begin a subsequent
accumulation phase.
[0034] Referring next to FIG. 5, a dispenser 220 is illustrated in accordance with the invention
but having otherwise a similar construction to that described above. The primary other
differences reside in the active valve assembly 257 and propellant valve assembly
251.
[0035] In particular, the active valve assembly 257 includes an annular lip 225 that extends
axially upstream into conduit 233, and defines and interior cavity 224. The axially
upstream end of lip 225 fits inside conduit 233 to deliver active to valve 237.
[0036] The propellant valve assembly 251 includes a flexible seal 234 extending radially
outwardly from member 225 such that the axially outer surface of seal 234 rests against
the axially inner surface of a seat 254. Seat 254 is disposed within the cup 234,
and receives inner and outer fork members 259 therein. Fork 259 defines the axially
inner end of a wall 279 that encloses a conduit 242 that flows into accumulation chamber
246. A porous flow control media 258 is disposed within conduit 242.
[0037] When the dispenser is in the "OFF" position illustrated in FIG. 5, seal 234 prevents
propellant from entering channel 242. However, referring to FIG. 6, when assembly
232 is further rotated to switch the dispenser "ON," fork members 259 are displaced
axially upstream against seal 234 which deflects outwardly away from seat 254. Because
inner fork member is displaced axially downstream from outer fork member, the inlet
to channel 242 is exposed to upper portion 235 of can 222, thereby enabling propellant
to enter accumulation chamber 246 via conduit 242.
[0038] Referring next to FIGS. 7-10, a dispenser 520 is mounted onto a can 522 in accordance
with a second embodiment. A more conventional container exit valve 537 extends upwardly
from the center of the valve cup 527. The valve 537 has an upwardly extending valve
stem 538, biased outwardly by a spring 569, through which the active mixture of the
can 522 may be expelled. Valve 537 is shown as a vertically actuated valve, which
can be opened by moving the valve stem 538 directly downwardly. Instead, one could
use a side-tilt valve where the valve is actuated by tipping the valve stem laterally
and somewhat downwardly.
[0039] Control assembly 532 includes an outer wall 544 threaded on its inner surface that
intermesh with threads of wall 536 that is connected to the can chime 539. Accordingly,
the user may rotate wall 544 to switch the dispenser between the "OFF" position (FIG.
7) and the "ON" position (FIG. 8)
[0040] Wall 544 is supported at its axially outer end by wall 552 that receives, in a groove
disposed at its lower end, the upper end of a retainer wall 541. An o-ring 563 is
disposed at the interface between walls 552 and 541. A monostable, flexible diaphragm
550 extends radially from the interface between the o-ring 563 and wall 552. O-ring
563 thus provides a seal to prevent gas from escaping from the accumulation chamber
546 during the accumulation phase. Wall 541 further includes a flange 543 extending
axially downstream towards diaphragm 550. An inverted "L" shaped wall 561 is attached
to the inner surface of diaphragm 550, and receives the axially outer end of flange
543 to prevent the escape of gas propellant during the accumulation phase.
[0041] Referring in particular to FIG. 10, dispenser 520 also includes a gas propellant
valve assembly 551 and an active valve assembly 557. The gas propellant valve assembly
551 includes wall 541, which defines a void that is occupied by a porous media 558.
A plunger 556 having a tip 559 is disposed within a seat 554 axially upstream of the
porous media 558. Seat 554 is affixed to the cup 527. Plunger 556 is annular, and
defines a channel 553 extending there through at a location axially downstream from
tip 559. Channel 535 defines the mouth of accumulation chamber 546.
[0042] A flexible seal 534 extends radially outwardly from tee 525 such that it rests against
the axially inner surface of seat 554. Two seals thus prevent the gas propellant from
entering accumulation chamber 546 when the dispenser is "OFF." Seal 534 minimizes
leakage during filling of the can and provides a redundant seal to the plunger. Channel
is in radial alignment with seat 554, thus forming a seal to prevent gas propellant
from entering into the plunger.
[0043] An active valve assembly 557 (see Fig. 7) includes a hub 515 that is formed from
the radially inner surface of annular retainer wall 541. The hub defines a channel
569 through which the active mixture flows from the valve stem 538 during a spray
phase. A plug 564 is attached to the axially inner surface of diaphragm 550, and extends
axially inwardly to seal channel 569, thus preventing active chemical from exiting
the dispenser 520 during the accumulation phase. An annular opening 567 is disposed
in the diaphragm 550 at a position adjacent the plug 567 to enable active chemical
to flow from the hub and out the dispenser 520 during the spray phase, as will be
described below.
[0044] When the control assembly 532 is rotated to switch the dispenser 520 to the "ON"
position, the accumulation phase begins. In particular, wall 541 and plunger 556 are
biased downwardly such that tip 559 deflects seal 534 away from the seat 554 in the
direction of arrow H. The plunger 556 is depressed such that channel 553 is translated
to a position axially upstream of seat 554, thereby permitting pressurized gas propellant
to enter the channel 553 along the direction of arrow I.
[0045] Plug 564 is biased against hub 565, which depresses valve stem 538, thereby pressurizing
active chemical against the plug. The seal formed between the plug 564 and hub 565
prevents any active chemical from exiting the dispenser during the accumulation phase.
[0046] The gas propellant travels through the porous media and into inlet 560 of the accumulation
chamber 546. The constant supply of gas propellant flowing into the accumulation chamber
546 causes pressure to build therein, and such pressure acts against the inner surface
of diaphragm 550. Once the accumulation chamber 546 is sufficiently charged with gas
propellant, such that the pressure reaches a predetermined threshold, the mono-stable
diaphragm 550 becomes deformed from the normal closed position illustrated in FIG.
28 to the open position illustrated in FIG. 9.
[0047] This initiates the spray phase, during which the diaphragm 550 is biased axially
downstream, thereby also biasing plug 564 axially downstream. An outlet channel is
thus formed between plug 564 and hub 565 that permits the pressurized active material
to flow along the direction of arrow J out the dispenser 520 into the ambient environment
as a "puff." Furthermore, wall 561 is translated axially downstream of flange 543,
thereby allowing the gas propellant stored in the accumulation chamber 546 during
the previous accumulation phase to travel along the direction of arrow K, mix with
the active chemical, and exit the dispenser 520.
[0048] Because the channel 553 is disposed below seat 554 during the spray phase, gas propellant
continues to flow into the accumulation chamber 546. However, because more propellant
exits accumulation chamber 546 than the propellant entering, the pressure within the
accumulation chamber quickly abates during the spray phase. Once the pressure within
chamber 546 falls below a predetermined threshold, the diaphragm 550 snaps back to
its normal position, re-establishing the seal between plug 564 and channel 569. The
propellant continues to flow into the accumulation chamber 546 to initiate the next
spray phase.
[0049] The above description has been that of preferred embodiments of the present invention.
It will occur to those that practice the art, however, that many modifications may
be made without departing from the scope of the invention as defined in the following
claims.
INDUSTRIAL APPLICABILITY
[0050] The present invention provides automated dispenser assemblies for dispensing aerosol
can contents without the use of repeated electric power or manual activation.
1. A valve assembly (257) that is suitable to dispense a chemical from an aerosol container
(222) that has a first region (235) with a gas propellant and a second region with
an active chemical, the valve assembly being of the type that can automatically iterate
between an accumulation phase where the gas propellant is received from the container
(222), and a spray phase where the active chemical is automatically dispensed at intervals,
the valve assembly (257) comprising:
a housing (232, 247) mountable on an aerosol container (222);
a movable diaphragm (250) associated with the housing (232, 247) and linked to a seal,
the diaphragm (250) being biased towards a first configuration;
an accumulation chamber (246) inside the housing (232, 247) for providing variable
pressure against the diaphragm (250);
a first passageway (242) in the housing (232, 247) suitable for linking the first
region (235) of the aerosol container (222) with the accumulation chamber (246);
a second passageway (265, 275) linking the second region with an outlet (267) of the
valve assembly;
whereby when the diaphragm (250) is in the first configuration the seal restricts
the flow of the active chemical out of the valve assembly (257); and
whereby when the pressure of gas propellant inside the accumulation chamber (246)
exceeds a specified threshold the diaphragm (250) can move to a second configuration
where active chemical is permitted to spray from the valve assembly (257);
characterized in that the accumulation chamber (246) will at least partially exhaust the gas propellant
when the diaphragm (250) is in the second configuration, and the gas propellant and
active chemical mix in the valve assembly (257) prior to exiting the valve assembly.
2. The valve assembly as recited in claim 1, wherein the diaphragm (250) will shift back
to the first configuration from the second configuration when pressure of the gas
propellant in the accumulation chamber (246) falls below a threshold amount.
3. The valve assembly as recited in claim 1, wherein the seal is displaceable in an axial
direction.
4. The valve assembly as recited in claim 1, further comprising a container (222) that
is linked to the valve assembly (257) where the active chemical is at least partially
in a liquid phase in the container, and an actuator portion (232) of the housing (232,
247) rotates to allow gas propellant to leave the container (222) and enter the first
passageway (242).
5. The valve assembly as recited in claim 1, wherein the active chemical is selected
from the group consisting of insect repellents, insecticides, fragrances, sanitizers,
and deodorizers.
6. A method of automatically delivering an active chemical from an aerosol container
to an ambient environment at predetermined intervals, the method comprising the steps
of:
(a) providing a valve assembly (257) according to any preceding claim
(b) mounting the valve assembly (257) to such an aerosol container (222); and
(c) actuating the valve assembly (257).
1. Ventilanordnung (257), die geeignet ist zum Ausgeben einer Chemikalie aus einem Aerosolbehälter
(222), der einen ersten Bereich (235) mit einem Treibgas und einen zweiten Bereich
mit einem chemischen Wirkstoff aufweist, wobei die Ventilanordnung von derjenigen
Art ist, die selbsttätig zwischen einer Sammelphase, in der Treibgas aus dem Behälter
(222) aufgenommen wird, und einer Sprühphase hin und her springen kann, in der der
chemische Wirkstoff selbsttätig intervallweise ausgegeben wird, und wobei die Ventilanordnung
(257) aufweist:
ein Gehäuse (232, 247), das auf einen Aerosolbehälter (222) aufsetzbar ist;
eine bewegbare Membran (250), die dem Gehäuse (232, 247) zugeordnet und mit einer
Dichtung verbunden ist, wobei die Membran (250) in einen ersten Zustand vorbeaufschlagt
ist;
eine Sammelkammer (246) im Gehäuse (232,247), mit der ein veränderbarer Druck auf
die Membran (250) ausübbar ist;
einen ersten Durchgang (242) im Gehäuse (232, 247), mit dem der erste Bereich (235)
des Aerosolbehälters (222) mit der Sammelkammer (246) verbindbar ist; und
einen zweiten Durchgang (265, 275), der den zweiten Bereich mit einem Auslass (267)
der Ventilanordnung verbindet;
wobei bei im ersten Zustand befindlicher Membran (250) die Dichtung die Strömung
des chemischen Wirkstoffs aus der Ventilanordnung (257) hinaus drosselt; und
wobei, wenn der Druck des Treibgases in der Sammelkammer (246) einen vorbestimmten
Schwellenwert übersteigt, die Membran (250) in einen zweiten Zustand übergehen kann,
in dem der chemische Wirkstoff als Sprühnebel aus der Ventilanordnung (257) austreten
kann;
dadurch gekennzeichnet, dass bei im zweiten Zustand befindlicher Membran (250) die Sammelkammer (246) das Treibgas
mindestens teilweise ausstößt und das Treibgas und der chemische Wirkstoff sich vor
dem Verlassen der Ventilanordnung (257) in dieser mischen.
2. Ventilanordnung nach Anspruch 1, bei der die Membran (250) aus dem zweiten in den
erste Zustand zurückkehrt, wenn der Druck des Treibgases in der Sammelkammer (246)
unter einen Schwellenwert sinkt.
3. Ventilanordnung nach Anspruch 1, bei der die Dichtung in einer Axialrichtung versetzbar
ist.
4. Ventilanordnung nach Anspruch 1 weiterhin mit einem Behälter (222), der mit der Ventilanordnung
(257) verbunden ist und der den chemischen Wirkstoff mindestens teilweise in einer
flüssigen Phase enthält, wobei ein Betätigungsteil (232) des Gehäuses (232, 247) verdrehbar
ist, damit Treibgas aus dem Behälter (222) und in den ersten Durchgang (242) einströmen
kann.
5. Ventilanordnung nach Anspruch 1, bei der der chemische Wirkstoff aus der Gruppe der
Insekten abstoßenden und abtötenden Stoffe, der Duftstoffe, der Desinfektionsmittel
und der Deodorantien ausgewählt ist.
6. Verfahren zum selbsttätigen Ausgeben eines chemischen Wirkstoffs in vorbestimmten
Intervallen aus einem Aerosolbehälter an die Umluft mit folgenden Schritten:
(a) Bereitstellen einer Ventilanordnung (257) nach einem der vorgehenden Ansprüche;
(b) Aufsetzen der Ventilanordnung (257) auf einen solchen Aerosolbehälter (222); und
(c) Betätigen der Ventilanordnung (257).
1. Ensemble de valve (257) qui est approprié pour distribuer un produit chimique provenant
d'une bombe aérosol (222) qui comporte une première région (235) avec un gaz propulseur
et une seconde région avec un produit chimique actif, l'ensemble de valve étant du
type qui peut automatiquement alterner entre une phase d'accumulation où le gaz propulseur
est reçu en provenance de la bombe (222), et une phase de pulvérisation où le produit
chimique actif est automatiquement distribué à intervalles, l'ensemble de valve (257)
comprenant :
un logement (232, 247) pouvant être monté sur une bombe aérosol (222) ;
un diaphragme mobile (250) associé au logement (232, 247) et relié à un joint, le
diaphragme (250) étant poussé vers une première configuration ;
une chambre d'accumulation (246) à l'intérieur du logement (232, 247) pour fournir
une pression variable contre le diaphragme (250) ;
une première voie de passage (242) dans le logement (232, 247) appropriée pour relier
la première région (235) de la bombe aérosol (222) à la chambre d'accumulation (246)
;
une seconde voie de passage (265, 275) reliant la seconde région à une sortie (267)
de l'ensemble de valve ;
moyennant quoi, lorsque le diaphragme (250) est dans la première configuration, le
joint limite l'écoulement du produit chimique actif en dehors de l'ensemble de valve
(257) ; et
moyennant quoi, lorsque la pression du gaz propulseur à l'intérieur de la chambre
d'accumulation (246) dépasse un seuil spécifié, le diaphragme (250) peut se déplacer
dans une seconde configuration où le produit chimique actif peut être pulvérisé depuis
l'ensemble de valve (257) ;
caractérisé en ce que la chambre d'accumulation (246) expulsera au moins partiellement le gaz propulseur
lorsque le diaphragme (250) sera dans la seconde configuration, et le gaz propulseur
et le produit chimique actif se mélangeront dans l'ensemble de valve (257) avant de
sortir de l'ensemble de valve.
2. Ensemble de valve selon la revendication 1, dans lequel le diaphragme (250) reviendra
dans la première configuration depuis la seconde configuration lorsque la pression
du gaz propulseur dans la chambre d'accumulation (246) tombera sous une quantité seuil.
3. Ensemble de valve selon la revendication 1, dans lequel le joint peut être déplacé
dans une direction axiale.
4. Ensemble de valve selon la revendication 1, comprenant en outre une bombe (222) qui
est reliée à l'ensemble de valve (257) où le produit chimique actif est au moins partiellement
dans une phase liquide dans la bombe, et une partie d'actionnement (232) du logement
(232, 247) tourne pour permettre au gaz propulseur de quitter la bombe (222) et d'entrer
dans la première voie de passage (242).
5. Ensemble de valve selon la revendication 1, dans lequel le produit chimique actif
est sélectionné dans le groupe constitué d'insectifuges, d'insecticides, de parfums,
de désinfectants et de désodorisants.
6. Procédé de distribution automatique d'un produit chimique actif depuis une bombe aérosol
vers un environnement ambiant à intervalles prédéterminés, le procédé comprenant les
étapes consistant à :
(a) prévoir un ensemble de valve (257) selon l'une quelconque des revendications précédentes,
(b) monter l'ensemble de valve (257) sur une telle bombe aérosol (222) ; et
(c) actionner l'ensemble de valve (257).